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Landa, B. B.

Publications and source records attributed to Landa, B. B..

2 recordsLinked to original sources

Hidden biotic stress alters climate sensitivity in woody plants

Chronic infection by vascular pathogens is conventionally expected to severely constrain host biomass accumulation, yet empirical evidence from long-lived woody plants remains inconsistent. We investigated the long-term impacts of Xylella fastidiosa colonization on the radial growth and climate sensitivity of adult Mediterranean almond trees (Prunus dulcis), aiming to resolve how persistent vascular infections modulate tree performance and resilience under a changing climate. We coupled high-resolution dendrochronological analysis with a novel, ring-resolved molecular reconstruction of individual infection histories across 706 annual rings. This hindcasting approach allowed for the retrospective identification of precise colonization dates, bacterial loads (Ct values), and pathogen subspecies (subsp. fastidiosa vs. subsp. multiplex). Growth-climate relationships were modelled using standardized ring-width indices (RWI) against a crop-weighted water deficit index (CWDi). Intra-host colonization followed a steep radial gradient, with active bacterial abundance concentrated in newly formed, functional outer xylem. Surprisingly, chronic infection did not trigger a sustained reduction in baseline annual ring width. Instead, pathogens fundamentally reshaped climate-growth sensitivity. Hosts infected by subsp. fastidiosa maintained high plastic growth tracking during wet years, whereas this capacity was significantly attenuated in those harbouring subsp. multiplex. Despite the absence of a chronic signal in trunk radial growth, vascular impairment was tightly associated with severe retrograde canopy dieback. Our findings indicate that chronic infection by X. fastidiosa can act as a latent biotic stressor, altering host physiological sensitivity to environmental fluctuations without directly suppressing baseline stem growth. This pattern is consistent with the marked temporal decoupling between spring cambial activity and late-summer bacterial proliferation, together with progressive vascular dysfunction leading to severe canopy dieback. These results suggest that current abiotic-centred frameworks of drought-induced decline may underestimate the contribution of cryptic vascular pathogens to vegetation mortality under intensifying climate change.

plant biology↗

A metabolic model based on a pangenome core unveils new biochemical features of the phytopathogen Xylella fastidiosa

Xylella fastidiosa is a xylem-limited phytopathogenic bacterium responsible for severe diseases in many economically important crops. Despite its impact, its metabolism remains poorly characterized due to fastidious growth and the limited availability of defined culture media. Here, we reconstruct the first pangenome-based genome-scale metabolic model for X. fastidiosa, integrating conserved metabolic functions from 18 strains across five subspecies. The resulting core model, iXfcore, is manually curated and used to explore the species metabolic capabilities. Model simulations predict minimal nutritional requirements that guided us in the formulation of defined media supporting biofilm formation in vitro, providing validation of the models predictive capacity. Network analysis also identifies a previously undescribed pathway enabling growth on acetate as a sole carbon source. In addition, the model predicts the overproduction of polyamines, compounds linked to virulence in other phytopathogens. Experimental analyses confirm the production and secretion of polyamines in multiple X. fastidiosa strains, providing the first evidence of this capability. These results suggest that polyamine biosynthesis may represent an uncharacterized virulence factor for X. fastidiosa, potentially contributing to protection against host-induced oxidative stress. Overall, iXfcore provides a systems-level framework to investigate X. fastidiosa metabolism, generate testable hypotheses on its physiology and virulence, and support future strain-specific models and studies of host-pathogen metabolic interactions.

systems biology↗